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Does Epileptiform Activity Represent a Failure of Neuromodulation to Control Central Pattern Generator-Like Neocortical Behavior?

机译:癫痫样活动是否代表神经调节功能无法控制像新皮层行为一样的中央模式发生器?

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摘要

Rhythmic motor patterns in invertebrates are often driven by specialized “central pattern generators” (CPGs), containing small numbers of neurons, which are likely to be “identifiable” in one individual compared with another. The dynamics of any particular CPG lies under the control of modulatory substances, amines, or peptides, entering the CPG from outside it, or released by internal constituent neurons; consequently, a particular CPG can generate a given rhythm at different frequencies and amplitudes, and perhaps even generate a repertoire of distinctive patterns. The mechanisms exploited by neuromodulators in this respect are manifold: Intrinsic conductances (e.g., calcium, potassium channels), conductance state of postsynaptic receptors, degree of plasticity, and magnitude and kinetics of transmitter release can all be affected. The CPG concept has been generalized to vertebrate motor pattern generating circuits (e.g., for locomotion), which may contain large numbers of neurons – a construct that is sensible, if there is enough redundancy: that is, the large number of neurons consists of only a small number of classes, and the cells within any one class act stereotypically. Here we suggest that CPG and modulator ideas may also help to understand cortical oscillations, normal ones, and particularly transition to epileptiform pathology. Furthermore, in the case illustrated, the mechanism of the transition appears to be an exaggerated form of a normal modulatory action used to influence sensory processing.
机译:无脊椎动物的节律性运动模式通常由专门的“中央模式生成器”(CPG)驱动,其中包含少量神经元,与另一个人相比,一个人可能“可识别”。任何特定CPG的动力学都受调节物质,胺或肽的控制,这些调节物质,胺或肽从其外部进入CPG或由内部组成神经元释放。因此,特定的CPG可以在不同的频率和振幅下生成给定的节奏,甚至可能生成独特模式的曲目。神经调节剂在这方面所利用的机制是多种多样的:内在电导(例如钙,钾通道),突触后受体的电导状态,可塑性程度以及递质释放的量和动力学都可以受到影响。 CPG概念已经推广到脊椎动物运动模式生成电路(例如,用于运动),其中可能包含大量的神经元–如果有足够的冗余,这种结构是明智的:也就是说,大量的神经元仅由少数类,并且任何一个类中的单元格都具有刻板印象。在这里,我们建议CPG和调节剂的想法也可能有助于理解皮质振荡,正常振荡,尤其是过渡到癫痫样病理。此外,在所示的情况下,转变的机制似乎是用于影响感觉处理的正常调节作用的夸大形式。

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